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April 17, 2026Protein Science0 citationsOpen Access

Missense mutations on SynGAP C2 domain impair membrane diffusion

MMMattia MiottoLBLeonardo Bo’GRGiancarlo Ruocco

Key Points

  • The study aims to understand how missense mutations in the SynGAP C2 domain affect its membrane association and dynamics.
  • Utilized molecular dynamics simulations to analyze SynGAP C2 domain interactions with lipid membranes.
  • Examined membrane binding in two orientations: top and side.
  • Analyzed the dynamical properties of both binding modes.
  • Observed that the top binding mode allows for faster lateral diffusion on the membrane.
  • Found that the side mode results in more stable but less mobile membrane contacts.
  • Pathogenic missense mutations disrupt dynamics, leading to reduced diffusivity and altered membrane affinity.

Abstract

Abstract SYNGAP1 mutations have been linked to a range of neuropathological disorders and, more recently, to the insurgence of cancer. SynGAP is a postsynaptic Ras GTPase‐activating protein that regulates Ras/ERK signaling and synaptic plasticity. All SynGAP isoforms share a conserved C2–RasGAP core, where the C2 domain may mediate interactions with phospholipid membranes that influence SynGAP localization and signaling at synapses. However, how the C2 domain associates with membranes and how disease‐associated missense mutations affect this process remain poorly understood. Here, using extensive molecular dynamics simulations integrated with structural analysis, we define how the SynGAP C2 domain associates with lipid bilayers. In particular, we observed spontaneous membrane binding of the domain in two distinct orientations, top and side, defined by the relative positioning of the C2 domain to its fold. These modes display markedly different dynamical properties: the top mode enables faster lateral diffusion on the membrane surface, whereas the side mode establishes more stable but less mobile contacts. Interestingly, pathogenic missense mutations mapping to the membrane‐facing loops of SynGAP C2 disrupt these dynamics, leading to reduced diffusivity and altered membrane avidity. Our findings reveal a dual binding mechanism that underlies SynGAP's membrane versatility and offer a general framework for how diverse mutations may perturb SynGAP activity across its polyhedric biological functions.

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Cite This Study

Miotto et al. (2026) studied this question.

synapsesocial.com/papers/69e1cfb15cdc762e9d858adehttps://doi.org/10.1002/pro.70574
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Atomistic simulations reveal impacts of missense mutations on the structure and function of SynGAP12024 · 3 citations
  2. 2Key roles of C2/GAP domains in SYNGAP1-related pathophysiology2024 · 11 citations
  3. 3SynGAP regulates synaptic plasticity and cognition independently of its catalytic activity2024 · 49 citations
  4. 4The C2 domain augments Ras GTPase Activating Protein catalytic activity2024
  5. 5Playing Multiple Parts: Unique Enzymatic and Structural Roles Orchestrated by SYNGAP12025